[0001] This invention relates to a speed fastener for securing apertured workpiece members
together.
[0002] The following documents were cited during prosecution of this application:
US 2003/0123949 A1, which relates to a tacking rivet for fastening work pieces together which have aligned
apertures therethrough; and
US 2008/0193256 A1, which relates to a threaded collapsible insert that is utilized for insertion into
a hole in a workpiece for subsequent installation of a threaded fastener.
[0003] Speed fastening (RTM) is a well known method of securing workpiece members together,
whereby a fastener having a hollow core is placed in aligned apertures in the workpiece
members, and a headed mandrel is pulled through the core of the fastener to cause
radial expansion of the fastener shank, and additionally a small degree of foreshortening
of the fastener. The radial expansion of the fastener shank ideally achieves mechanical
engagement between the fastener shank and the walls of the apertures in the workpiece
members. The axial foreshortening effect can help pull the rearmost sheet up towards
the fastener head to close gaps between the workpiece members.
[0004] Prior art fasteners, such as those available under the trade marks Briv (UK patent
number
GB1323873A) and Chobert, have cylindrical shank portions which in a central region have a uniform
wall thickness, i.e. a constant cross-sectional area. The tail end of the fastener
shank has an increased wall thickness; in the case of the Briv fastener this is an
enlarged outer diameter and in the case of the Chobert fastener, a reduced bore diameter
of tapered form.
[0005] These prior art fasteners are installed by pulling a mandrel of a given diameter
through the fastener bore, thereby causing a radially enlarged head of the mandrel
to expand the central region of the shank into the apertures in the workpiece members.
Accordingly, the degree of radial expansion is governed by the diameter of the mandrel
head for a nominal fastener diameter.
[0006] Prior art fasteners have a low degree of tolerance in workpiece aperture diameter,
i.e. only a limited range of workpiece aperture diameters can be accommodated with
a nominal fastener size and a single head diameter mandrel. Accordingly, there is
a narrow range between the two acceptable extremes of workpiece aperture diameter
when using a nominal fastener and a specific head diameter mandrel.
[0007] In an optimised installation of a prior art fastener, i.e. wherein the workpiece
aperture diameters are within the acceptable range for a given fastener diameter and
mandrel head diameter, the expansion of the fastener shank by the mandrel head causes
mechanical engagement between the fastener shank and the walls of the workpiece apertures,
without 'overpacking' (as explained below). The constraint provided by the wall of
the aperture of the rear workpiece member (i.e. the workpiece member which is furthest
away from the fastener head) generates radial forces and hence frictional resistance
to axial movement of the rear workpiece member relative to the fastener rivet shank.
[0008] However, if a workpiece aperture diameter is smaller than the acceptable range for
a prior art fastener, an unduly high placing force will be required to install the
fastener because it will be overpacked in the aperture. This can cause wear of the
mandrel or cause other undesirable effects such as debris generation from the fastener
bore, or fastener head malformation, such as by extrusion of fastener bore material
up into the head region.
[0009] It is common for the aperture diameter of the top workpiece member (i.e. the workpiece
member which is closest to the fastener head) to be configured such that it is slightly
larger than the aperture in the rear workpiece member, in order to accommodate aperture
pitch errors. If the aperture diameter of the top workpiece member is above the acceptable
range for a prior art fastener, the expansion of the shank of the fastener does not
result in any mechanical engagement between the fastener shank and the wall of the
oversized workpiece aperture, resulting in low resistance of the joint to movement
under shear loads.
[0010] To compensate for oversize workpiece apertures, an oversized mandrel, i.e. a mandrel
having an oversized head, can be used to install a fastener. However, there is a risk
that an oversized mandrel can incorrectly be used for a undersized workpiece aperture,
thereby leading to the problems caused by a high placing force as discussed above.
[0011] The problem of a workpiece aperture diameter being above the acceptable range for
a specific fastener diameter and mandrel head diameter is illustrated in Figure 1,
which illustrates a prior art fastener 2 installed into a workpiece 30 at the lowest
end of a grip range. The workpiece comprises a top workpiece member 32 having an oversized
aperture 36, and a rear workpiece member 34 having an acceptable aperture 38. Due
to the top workpiece member 32 having an oversized aperture 36, the installation has
not resulted in any mechanical engagement between the fastener shank 4 and the wall
of the aperture 36.
[0012] A correctly installed prior art fastener exhibits a enlarged tail end formation due
to the greater wall thickness in that region. In a maximum-grip application, this
enlarged tail end formation is adjacent to the outer surface of the rear workpiece
member and so serves to provide support and resistance to movement of the joint if
subject to tensile loads. However in a mid-grip or a minimum-grip condition (as shown
in Figure 1) the enlarged tail formation 44 is remote from the rear workpiece member
34 and it is therefore unable to help resist initial separation of the workpiece members
32, 34 under tensile loads; the resistance must result almost entirely from the frictional
forces resulting from the radial pressure exerted by the expanded central region of
the fastener shank 4 having a uniform wall thickness. Consequently the resistance
to separation is lower in mid or minimum-grip conditions.
[0013] Other speed fasteners which are currently available, such as those available under
the trade marks Avtronic (RTM) and Rivscrew (RTM), feature a nonuniform wall thickness
in the centre of the fastener shank. These fasteners comprise voids on the exterior
of the fastener shank in the form of annular grooves and a helical screw thread form
respectively. These fasteners are intended to expand and embed into a workpiece wherein
the workpiece members are comprised of a material which is relatively soft in comparison
to the material of the fastener. The annular or helical voids of these fasteners lead
to variable expansion into the rear workpiece member, with high or low degrees of
mechanical engagement between the fastener shank and the wall of the workpiece apertures,
and an expanded tail form of inconsistent size or distribution around the hole periphery.
[0014] The present invention is aimed at providing a fastener which will ensure complete
and consistent mechanical engagement between the fastener shank and the wall of both
the workpiece apertures, i.e. achieve complete mechanical engagement for a fastening
which is more robust than is achievable with prior art fasteners. The present invention
is also aimed at providing a fastener which allows the specification of a single fastener
length and one mandrel size to install into a wider grip range and which can tolerate
a far greater variation in workpiece aperture diameter than prior art fasteners, whilst
avoiding the problems of high placing force, mandrel wear, debris generation and fastener
head malformation with a single mandrel head size or diameter.
[0015] Furthermore the present invention is aimed at providing a fastener which is suitable
for use in securing workpiece members which may be of harder material than the fastener,
and wherein the grip range of the fastener is dependent only upon the length of the
fastener i.e. a longer fastener has a greater grip range, allowing a fastener having
a nominal length to be used in a wider range of workpiece thicknesses.
[0016] Accordingly the present invention comprises, in a first aspect, a fastener as claimed
in claim 1 of the appended claims.
[0017] The present invention comprises, in a further aspect, a method of installation of
a fastener in accordance with claim 12.
[0018] The installation of the fastener may be undertaken by a tool comprising a conical
concave end face which bears on an upper surface of the fastener head. This causes
the fastener head to be pushed towards the top workpiece member and the head to flatten
slightly against the top workpiece member, and thereby ensuring clamping of the fastening.
The flattening of the head periphery against the top workpiece member acts such that
the outer diameter of the underhead recess decreases, and the bearing area of the
fastener head against the workpiece is increased. Furthermore the bearing area of
the tool end face on the upper surface of the fastener head is greater than with prior
art speed fasteners such that undesirable indentations or damage to the surface of
the fastener head are minimised during installation of the fastener.
[0019] The present invention comprises, in further aspects, a method of installation of
a fastener in accordance with claim 14 or claim 15.
[0020] A fastener installed by the method of claim 15 may further comprise a parallel portion
between the breakneck point and the plugging portion, which, during installation,
forms a locking skirt thereby providing a mechanical lock of the installed stem in
the fastener shank.
[0021] The present invention comprises, in a further aspect, a method of installation of
a fastener in accordance with claim 17. This method may further comprise a subsequent
step of bearing on the fastener head by a support sleeve, and removing the pin from
the fastener bore.
[0022] The axial voids of the present invention allow a variable degree of mechanical engagement
between the fastener shank and the wall of the workpiece apertures in different sizes
of workpiece member aperture, such as an oversized aperture in the top workpiece member,
thereby providing mechanical resistance to shear movement, without leading to 'overpacking',
thereby avoiding potentially excessive placing loads, mandrel wear, debris generation
and fastener head malformation.
[0023] Because the voids are positioned axially with respect to the fastener shank, they
have a cross-sectional area which is constant along the length of the fastener shank.
This ensures that the degree of radial expansion and the mandrel load are consistent,
independent of grip thickness. The present invention can therefore be used in a greater
grip range than that offered by equivalent-sized prior art fasteners. Furthermore
the grip range which can be accommodated by a specific fastener is dependent only
upon the length of the fastener, i.e. a longer fastener can accommodate a greater
grip range.
[0024] Furthermore, the present invention provides that a single mandrel (i.e. a mandrel
having a set head size) can be used to install a fastener into a workpieces having
a variety of aperture sizes.
[0025] The present invention also provides greater expansion of the tail end of the fastener
shank adjacent to the rear workpiece member, throughout the grip range, thereby providing
increased resistance to separation of the workpiece members under tensile loads.
[0026] The present invention is also suitable for use in securing workpiece members which
may be of harder material than the fastener.
[0027] The axial voids are preferably equidistant from one another.
[0028] The axial voids preferably extend from immediately below the fastener head.
[0029] The fastener head may include a countersink in its top surface, the countersink having
an average diameter which is greater than the diameter of the bore of the fastener.
The countersink could comprise a flat or a curved annular tapered wall, and a neck
portion could be provided between the countersink and the fastener bore. The countersink
and the neck portion both accommodate rivet body material which is drawn axially through
and into the rivet head by the passage of the enlarged mandrel head through the rivet
bore. Furthermore, the countersink controls the broach load on installation of the
fastener, and avoids excess fastener material pulling out from the top of the installed
fastener head.
[0030] The fastener may include a tapered point at the tail end of the fastener shank. An
advantage of the tapered point feature is that it allows fasteners to be nested together
"head-to-tail" in a stack within a paper pod, etc, when a countersink is provided
in the fastener head. This ensures coaxial alignment of adjacent rivet bores which
in turn makes it easier to load the fastener stack as one onto a mandrel shank. Furthermore
the tapered point also assists in locating the fastener in the workpiece aperture,
and reduces the height of the stack of fasteners prior to installation, thus permitting
more rivets to fit a placing tool of a given length, and provides increased rigidity
to the stack on the relatively flexible mandrel.
[0031] The fastener may also include a solid tail ring provided at the tail end of the fastener
shank, between the voided section and the tapered point. The tail ring, despite its
remote position from the rear workpiece member, nonetheless contributes to the ultimate
tensile strength of the fastener via its reinforced wall section.
[0032] The fastener may also comprise an end section at the tail end of the fastener beyond
the tapered point, the end section having a straight annular wall which is parallel
to a longitudinal axis of the fastener. The end section is further facilitates the
storing of multiple fasteners "head-to-tail" in a stack prior to installation.
[0033] Embodiments of the invention will now be described by way of example only and with
reference to the figures in which;
Figure 1 is a side view of a prior art fastener installed into a workpiece;
Figure 2 is a side view of a fastener in accordance with the present invention prior
to installation into a workpiece;
Figures 3a and 3b are an isometric views of the fastener of Figure 2;
Figure 4 is a cross-sectional view of the fastener of Figure 2 along the line IV-IV;
Figure 5 is a cross-sectional view of the fastener of Figure 4 along the line V-V;
Figure 6 is a cross-sectional view of the fastener of Figure 2 along the line VI-VI;
Figure 7 is a side view of a plurality of fasteners of Figure 2 arranged in a stack;
Figure 8 is cross-sectional view of the stack of fasteners of Figure 7 along the line
VIII-VIII;
Figure 9a is an axial cross-sectional view of the fastener of Figure 2 installed into
a workpiece wherein the aperture diameter of the top workpiece member is oversized;
Figure 9b is an axial cross-sectional view of the fastener of Figure 2 installed into
a workpiece having a minimum grip;
Figure 10a is a cross-sectional view of the installed fastener of Figure 9a along
the line Xa-Xa;
Figure 10b is a cross-sectional view of the installed fastener of Figure 9b along
the line Xb-Xb;
Figure 11 is a cross-sectional view of the installed fastener of Figure 9a along the
line XI-XI;
Figure 12 is a cross-sectional view of the installed fastener of Figure 9a along the
line XII-XII;
Figures 13 and 14 illustrate an alternative method of installation of the fastener
of Figure 2;
Figures 15 and 16 illustrate a further alternative method of installation of the fastener
of Figure 2;
Figure 17 illustrates a further alternative method of installation of the fastener
of Figure 2;
Figure 18 illustrates a alternative embodiment of fastener in accordance with the
present invention;
Figure 19 is a cross-sectional view of the fastener of Figure 18 along the line XIX
-XIX;
Figure 20 is a side view of a further alternative embodiment of fastener in accordance
with the present invention;
Figure 21 is a cross-sectional view of the fastener of Figure 20 along the line XXI
-XXI;
Figure 22 is an isometric view of the fastener of Figure 20;
Figure 23 is a side view of a plurality of fasteners of Figure 20 arranged in a stack;
Figure 24 is cross-sectional view of the stack of fasteners of Figure 23 along the
line XXIV-XXIV;
and
Figure 25 is cross-sectional view of a fastener, workpiece, tool nose (remaining tool
is omitted for clarity) and mandrel in accordance with the present invention.
[0034] Referring to Figures 2 to 8, a fastener 2 according to the present invention comprises
a shank 4, a radially enlarged head 6 with a domed upper surface 7 at a head end 8
of the shank 4, and a tapered point 10 at a tail end 12 of the shank 4. An annular
underhead recess 42 is provided under the head 6. A bore 14, having a diameter B,
is provided throughout the fastener 2, i.e. throughout the shank 4, head 6 and tapered
point 10. A voided section 16 is provided on the external wall 20 of the shank 4.
The voided section 16 comprises a plurality of substantial axial voids 40, which extend
radially inwardly from the major diameter 'D' of the shank exterior, and which separated
by a plurality of substantial axial splines 18, which extend radially outwardly from
the minor diameter 'd' of the shank exterior. The splines 18 are parallel and are
spaced equidistant from one another around the external wall 20 of the shank 4, and
extend axially, i.e. with respect to a longitudinal axis of the fastener bore 14,
from under the head 6 towards the tail end 12 of the shank 4. A tail ring 22 is provided
at the tail end 12 of the shank 4, between the voided section 16 and the tapered point
10. The tail ring 22 comprises a solid wall, i.e. the voided section does not extend
into the tail ring 22. A tapered transition section is provided between the voided
section 16 and the tail ring 22, whereby at the end of each void 40 further from the
head 6, the shank gradually increases in diameter to the major diameter 'D' of the
shank exterior.
[0035] The splines 18 are of an approximate trapezoidal cross-section, and culminate in
flattened crests 24, wherein a maximum shank diameter 'D' is defined between the centres
of opposing crests 24, and a minimum shank diameter 'd' is defined between the centres
of opposing voids 40. The depth of the voids 40 (i.e. the height H of the spines 18
as shown in Figure 4) is greater than would be present, for example, in knurling.
The ratio of spline height H to maximum shank diameter D could be, for example, approximately
between 1:6 and 1:14.
[0036] A countersink 26 comprising a flat annular tapered wall is provided in the top surface
5 of the head 6. The countersink 26 comprises a flat, annular tapered wall, such that
the countersink has a maximum diameter X furthest from the fastener bore, and a minimum
diameter x closest to the fastener bore. The average diameter of the countersink is
therefore greater than the diameter B of the fastener bore. A tapered neck portion
28 is provided between the countersink 26 and the fastener bore 14, wherein the maximum
diameter Y of the neck portion 28 is equal to the minimum diameter x of the countersink,
and the minimum diameter y of the neck portion 28 is equal to the diameter B of the
fastener bore.
[0037] Multiple fasteners are provided "head-to-tail" in a stack 50 as illustrated in Figures
7 and 8, ready for loading onto the mandrel or for sequential installation once on
a mandrel within the placing tool. The maximum diameter X of the countersink, and
the angle of taper of the countersink 26, are such that the tapered point 10 of an
adjacent fastener can be accommodated at least partially in the countersink 26, allowing
the fasteners to be stacked.
[0038] Installation of the fastener 2 to secure a workpiece 30 comprising a first, top workpiece
member 32 and a second, rear workpiece member 34 (i.e. the workpiece member which
is furthest away from the fastener head) is effected by inserting a mandrel 104 (Figure
25) having a radially enlarged head 106 of maximum diameter M (where M is greater
than the diameter B of the fastener bore 14), through the bore 14 of the fastener
2, such that the radially enlarged head 106 of the mandrel is at the tail end 12 of
the fastener shank 4. The fastener 2 and mandrel 104 are inserted into apertures 36,
38 provided in the workpiece members 32, 34. A tool having a tool nose 100 (the nose
of the tool only is shown in Figure 25) having a conical concave end face 102 is used
to bear on the domed upper surface 7 of the fastener head 6. The tool nose 100 is
used to pull the mandrel 104 through the fastener bore 14, thereby causing the fastener
shank 4 to expand and cause mechanical engagement between the crests 24 of the splines
18 and the walls of the workpiece apertures 36, 38 as the crests 24 are crushed against
the walls of the apertures 36, 38. The countersink 26 and the neck portion 28 both
accommodate fastener body material which is drawn axially through and into the fastener
head 6 by the passage of the enlarged mandrel head 106 through the fastener bore 14.
Furthermore, the countersink controls the broach load on installation of the fastener
2, and avoids excess fastener material pulling out from the top of the installed fastener
head 6.
[0039] Figure 9a illustrates the fastener 2 fully installed into a workpiece 30 having a
maximum grip, and Figure 9b illustrated the fastener 2 fully installed into a workpiece
30 having a minimum grip.
[0040] The force applied by the conical concave end face 102 of the tool nose 100 to the
domed upper surface 7 of the fastener head 6 causes the head 6 to be pushed towards
the top workpiece member 32 and the head to flatten slightly against the top workpiece
member 32, and thereby ensuring clamping of the fastening. The flattening of the head
periphery 22 against the top workpiece member 32 acts such that the outer diameter
of the underhead recess 42 decreases, and the bearing area of the fastener head 6
against the workpiece 30 is increased. Furthermore the bearing area of the tool end
face 102 on the upper surface 7 of the fastener head 6 is greater than with prior
art speed fasteners such that undesirable indentations or damage to the surface of
the fastener head 6 are minimised during installation of the fastener.
[0041] The extent to which the crests 24 are crushed against the a wall of a workpiece apertures
36, 38 during installation is determined by the diameter of the aperture. An oversize
workpiece aperture will result in the crests 24 being only slightly crushed against
the wall of the workpiece aperture 36, 38. This is illustrated in Figure 11, which
illustrates marginal crushing of the crests 24 against the wall of the aperture 36
of the top workpiece member 32. As illustrated in Figure 12, an aperture having a
nominal diameter (i.e. which is smaller than the oversized aperture of Figure 11),
will result in a greater degree of crushing of the crests 24 against the wall of the
workpiece aperture 38 than occurs with the oversized aperture of Figure 11.
[0042] The displaced material of the crushed crests 24 is accommodated by the axial voids
40. For a minimum diameter workpiece aperture, the axial voids 40 will be completely
filled by displaced crest material.
[0043] The tail ring 22 helps support the ends of the splines 18 and prevents them from
folding "inwards" under tensile joint loads. After the initial resistance of the crest
24 of the spline 18 is overcome in very high tensile loading, the crest 24 are "peeled
off" as the rear sheet slides up to the expanded tail ring. At the tail ring 22, the
resistance to further movement is higher as this portion is a solid ring, therefore
ensuring the ultimate tensile strength of the installed fastener.
[0044] It is possible that fastener 2 and/or that the aperture 38 of the rear workpiece
member 34 are not concentric with the aperture 36 of the top workpiece member 32.
In this situation, the crests 24 of the splines 18 will be crushed by a variable amount
against the wall of the aperture 36, thereby still ensuring mechanical engagement
of all crests 24 against the aperture wall, despite the eccentricity of the fastener
2 and/or the rear workpiece member aperture 38 relative to and top workpiece member
aperture 36.
[0045] Figures 9a to 10b also illustrate an enlarged tail formation 44 which results from
the installation of the fastener 2. Beyond the rear workpiece member 34, the splines
18 are free to expand fully (see Figures 10a and 10b), thus creating a 'footprint'
or enlarged tail formation 44 which is adjacent to the rear workpiece member 34 and
which is in contact with the rear workpiece member 34 (see Figure 10a). A plurality
of trapezoidal footprint contact areas 46 are formed. Because the enlarged tail formation
44 is formed adjacent to and in contact with the rear workpiece member 34, it therefore
provides a greatly increased mechanical resistance to initial axial movement due to
tensile loading on the fastening than is provided by prior art fasteners. The enlarged
tail formation 44 is formed adjacent to the rear workpiece member 34 across a given
grip range, as can be seen in Figures 9a and 9b.
[0046] In the embodiment described above, the fastener is installed by pulling a radially
enlarged mandrel head completely through the fastener bore 14. However, alternative
methods of expanding the fastener shank 4 thereby to install the fastener 2 are illustrated
in Figures 13 to 17. The method illustrated in Figures 13 and 14 uses a solid breakstem
70, which comprises a breakneck point 72, a radially enlarged head 74, and plugging
portion 76 between the breakneck point 72 and the head 74, wherein the plugging portion
76 is of an equivalent diameter to the maximum diameter M of the mandrel head 106
of the used in the first embodiment. The breakstem 70 and fastener 2 are inserted
into the apertures 36, 38 in the workpiece members 32, 34. The breakstem 70 is subsequently
pulled through the fastener 2 causing the plugging portion 76 to radially expand the
shank 4 of the fastener, until the radially enlarged head 74 of the breakstem 70 contacts
with the tail end 12 of the fastener shank 4, which causes the load being applied
to the stem 70 to increase sufficiently to cause the stem 70 to fail at the breakneck
point 72 Figure 14 illustrates the fastener 2 fully installed into the workpiece 30.
The plugging portion 76 remains within the shank 4 of the fastener 2 and contributes
additionally to the ultimate shear strength of the installed fastener. Supplementary
"barbs", knurls or similar (not shown) could be provided on the plugging portion outer
surface to provided enhanced resistance against recoil of the stem plugging portion
76 on failure of the breakneck point 72 and against removal of the plugging portion
76 from the fastener 2 after installation.
[0047] The alternative method illustrated in Figures 15 and 16 uses a breakstem 80 such
as that available under the trade mark Monobolt (UK patent number
GB1538872). The breakstem comprises a plugging portion 82 with a hollow core 84, a parallel
portion 85 adjacent the plugging portion 82, an elongate shank 88, and a breakneck
point 86 between the parallel portion 85 and the elongate shank 88. Installation of
the fastener into a workpiece 30 involves inserting the fastener into the apertures
36, 38 in the workpiece members 32, 34, the breakstem is inserted into the bore 14
of the shank 4, such that the plugging portion of the breakstem contacts the tail
end 12 of the fastener shank 4. The elongate shank 88 is then pulled relative to the
fastener 2 thereby causing the breakstem plugging portion 82 to enter the fastener
shank 4, simultaneously causing the fastener shank 4 to expand and the plugging portion
82 to collapse inwardly to a small degree due to the hollow core 84. The elongate
shank 88 is pulled until the breakstem 80 fails at the breakneck point 86.
[0048] The slight inward collapse of the plugging portion 82 allows for a variation in workpiece
aperture dimension, i.e. the plugging portion 82 is more compliant than the solid
core of the breakstem 70 of Figures 13 and 14. This method of installation therefore
provides an enhanced tolerance to differences in workpiece aperture diameter. The
breakstem 80 could include a locking "skirt" feature (not shown) which is created
by the parallel portion 85 on installation of the fastener, wherein material of the
parallel portion 85 is displaced radially outwards into the countersink in the fastener
head 6, i.e. into the area marked at 87 in Figure 16. The locking skirt thereby provides
a mechanical lock of the installed breakstem 80 in the fastener shank 4 to resist
recoil of the plugging portion 82 on failure of the breakneck point 86 and against
removal of the plugging portion 86 from the fastener shank 4 after installation.
[0049] The method illustrated in Figure 17 is a "push broach" method, wherein a solid pin
90, having a diameter larger than that of the fastener bore 14, is driven into the
fastener 2 via the head 6 to expand the fastener shank 4. This pin 90 could remain
in the fastener shank 4 permanently or could be a removable part of the placing tooling,
in which case a support sleeve (not shown) might be needed around the pin 90 to bear
on the fastener head 6 to allow removal of the pin 90 from the fastener shank 4.
[0050] In the alternative fastener 2' as illustrated in Figures 18 and 19, the countersink
26' comprises a curved tapered annular wall, and the tapered neck portion 28 is not
present. This embodiment radius reduces the likelihood of debris generation on installation
of the fastener. The broach load caused when the mandrel head passes through the fastener
head 6 is reduce, whilst maintaining sufficient tensile strength. During installation,
some material of the fastener shank 4 is displaced backwards towards the tool, such
that the counterbore is no longer visible in the placed fastener.
[0051] A further alternative fastener (not shown in the figures) could comprise a countersink
having a curved tapered annular, and a neck portion.
[0052] In a further alternative fastener 2", as illustrated in Figures 20 to 22, an end
section 60 having a straight annular wall which is parallel to the longitudinal axis
of the fastener bore 14, is provided beyond the tapered point 10 at the tail end of
the fastener shank 4. In this embodiment, the countersink 26" comprises a flat annular
wall which is parallel to the longitudinal axis of the fastener bore 14, i.e. the
wall of the countersink 26" is not tapered. A tapered neck portion 28 is also provided
between the countersink 26" and the fastener bore 14. The diameter of the countersink
26" is similar to the diameter of the end section 60 to allow the fasteners to be
arranged "head-to-tail" in a stack 50' of the fasteners, as illustrated in Figures
23 and 24.
1. A fastener (2), for securing a workpiece (30) comprising a plurality of workpiece
members (32, 34),
said fastener comprising a shank (4) with a head end (8) and a tail end (12) remote
from the head end, and a radially enlarged head (6) at the head end of the shank,
and a bore (14) extending throughout the fastener,
wherein an external wall (20) of the shank comprises a voided section (16) comprising
a plurality of voids (40) separated by a plurality of splines (18) each of which culminates
in a crest (24), the voids and splines being elongated in an axial direction with
respect to a longitudinal axis of the fastener bore; wherein the voids extend radially
inwardly from a major diameter (D) of the shank exterior, and wherein the splines
extend radially outwardly from a minor diameter (d) of the shank exterior,
wherein the splines are of an approximate trapezoidal cross-section, and the voids
have a cross-sectional area which is constant along the length of the voided section
of the fastener shank;
wherein the shank (4) includes an unvoided solid tail ring (22) between the voided
section (16) and the tail end (12) of the shank (4), the unvoided solid tail ring
(22) having an external diameter approximately equal to the major diameter (D) of
the shank exterior in the voided section (16).
2. A fastener as claimed in claim 1 wherein the axial voids are equidistant from one
another.
3. A fastener as claimed in any one of the preceding claims wherein the axial voids extend
from immediately underneath the fastener head.
4. A fastener as claimed in any one of the preceding claims wherein the fastener head
comprises a countersink (26, 26', 26") provided in a top surface of the head remote
from the fastener shank, the countersink having an average diameter which is greater
than the diameter of the bore of the fastener.
5. A fastener as claimed in claim 4 wherein the countersink comprises a flat annular
tapered wall or a curved tapered annular wall.
6. A fastener as claimed in claim 4 wherein the countersink comprises a flat annular
wall which is parallel to the longitudinal axis of the fastener bore of the bore.
7. A fastener as claimed in claim 5 wherein a tapered neck portion (28) is provided between
the countersink and the fastener bore.
8. A fastener as claimed in any one of the preceding claims further comprising a tapered
point (10) at the tail end of the fastener shank.
9. A fastener as claimed in claim 8 further comprising an end section (60) at the tail
end of the fastener beyond the tapered point, the end section having a straight annular
wall which is parallel to a longitudinal axis of the fastener.
10. A fastener as claimed in claims 6, 7 and 9, wherein the diameter of the end section
is similar to the diameter of the countersink.
11. A fastener as claimed in any one of claims 8 to 10 wherein the solid tail ring (22)
is between the voided section and the tapered point.
12. A method of installing a fastener according to any one of the preceding claims, thereby
to secure a workpiece comprising a first apertured workpiece member (32) and a second
apertured workpiece member (34), the method comprising the steps of;
a) placing a mandrel (104) having a radially enlarged head (106) through the fastener
bore such that the radially enlarged head of the mandrel is adjacent the tail end
of the fastener shank;
b) inserting the fastener and mandrel into the apertures (36, 38) in the first and
second workpiece members such that the fastener head contacts the first workpiece
member;
c) supporting the fastener at the head end whilst drawing the mandrel entirely through
the fastener bore, thereby expanding the fastener shank into the apertures of the
workpiece members, and causing the crests of the splines to be deformed against the
apertures, and causing the tail end of the fastener shank to radially enlarge adjacent
to the second workpiece member.
13. A method as claimed in claim 12 wherein step c) is undertaken by a tool (100) comprising
a conical concave end face (102) which bears on an upper surface of the fastener head.
14. A method of installing a fastener according to any one of claims 1 to 11, thereby
to secure a workpiece comprising a first apertured workpiece member and a second apertured
workpiece member, the method comprising the steps of;
a) inserting a stem (70) comprising a radially enlarged head (74), a breakneck point
(72), and a plugging portion (76), into the fastener through the fastener bore such
that the radially enlarged head of the stem is adjacent the tail end of the fastener
shank;
b) inserting the fastener and the stem into the apertures in the first and second
workpiece members such that the fastener head contacts the first workpiece member;
c) supporting the fastener at the head end whilst pulling the stem with respect to
the fastener head, thereby causing the plugging portion to radially expand the fastener
shank into the apertures of the workpiece members and deform the crests of the splines
against the apertures, and also thereby causing the radially enlarged head of the
stem to contract, and then compress, the tail end of the fastener shank, thereby causing
the tail end of the fastener shank to radially enlarge adjacent to the second workpiece
member; wherein the stem is pulled with respect to the fastener head through the fastener
bore until the stem fractures at the breakneck point.
15. A method of installing a fastener according to any one of claims 1 to 11, thereby
to secure a workpiece comprising a first apertured workpiece member and a second apertured
workpiece member, the method comprising the steps of;
a) inserting the fastener into the apertures in the first and second workpiece members
such that the fastener head contacts the first workpiece member;
b) inserting a breakstem (80) comprising a plugging portion (82) with a hollow core
(84), an elongate shank (88), and a breakneck point (86) between the plugging portion
and the elongate shank, into the bore of the fastener, such that the plugging portion
of the breakstem contacts the tail end of the fastener shank;
c) pulling the elongate shank of the breakstem pulled relative to the fastener, thereby
causing the breakstem plugging portion to enter the fastener shank, causing the fastener
shank to expand into the workpiece apertures, and causing the crests of the splines
to be deformed against the apertures, and simultaneously causing the plugging portion
to collapse inwardly into the hollow core; wherein the elongate shank is pulled relative
to the fastener until the breakstem fails at the breakneck point.
16. A method of installing a fastener according to claim15, wherein the stem further comprises
a parallel portion (85) between the breakneck point and the plugging portion, and
wherein, during step c), a locking skirt is created by the parallel portion, thereby
providing a mechanical lock of the installed stem in the fastener shank.
17. A method of installing a fastener according to any one of claims 1 to 11, thereby
to secure a workpiece comprising a first apertured workpiece member and a second apertured
workpiece member, the method comprising the steps of;
a) inserting the fastener into the apertures in the first and second workpiece members
such that the fastener head contacts the first workpiece member;
b) driving a solid pin (90), having a maximum diameter larger than that of the fastener
bore, into the bore of the fastener via the head thereby to radially enlarge the fastener
shank into mechanical engagement with the workpiece apertures, and causing the crests
of the splines to be deformed against the apertures.
18. A method of installing a fastener according to claim 17 further comprising a subsequent
step of bearing on the fastener head by a support sleeve, and removing the pin from
the fastener bore.
19. Fastening apparatus, for securing a workpiece (30) comprising a plurality of workpiece
members (32, 34), said apparatus comprising a fastener (2) as claimed in any of claims
1 to 11 and a mandrel (104).
20. Fastening apparatus as claimed in claim 19 wherein said mandrel comprises a radially
enlarged head (106) of a maximum diameter which is greater than a diameter of the
fastener bore, and less than a maximum external diameter of the fastener shank.
1. Ein Befestiger (2) zum Sichern eines Werkstücks (30), das mehrere Werkstückelemente
(32, 34) umfasst,
wobei der Befestiger einen Schaft (4) mit einem Kopfende (8) und einem von dem Kopfende
entfernten Endstückende (12) und einen radial vergrößerten Kopf (6) am Kopfende des
Schafts und einer Bohrung (14), die sich durch den Befestiger erstreckt, umfasst,
wobei eine Außenwand (20) des Schafts einen hohlen Abschnitt (16) umfasst, der mehrere
Hohlräume (40) umfasst, die durch mehrere Keile (18) getrennt sind, jeder von denen
in einem Kamm (24) kulminiert, wobei die Hohlräume und Keile in axialer Richtung in
Bezug auf eine Längsachse der Befestigerbohrung verlängert sind; wobei sich die Hohlräume
von einem Hauptdurchmesser (D) der Schaftaußenseite radial nach innen erstrecken und
wobei sich die Keile von einem Kerndurchmesser (d) der Schaftaußenseite radial nach
außen erstrecken,
wobei die Keile einen ungefähren trapezförmigen Querschnitt aufweisen und die Hohlräume
eine Querschnittsfläche aufweisen, die entlang der Länge des hohlen Abschnitts des
Befestigerschafts konstant ist;
wobei der Schaft (4) einen nicht hohlen massiven Endstückring (22) zwischen dem hohlen
Abschnitt (16) und dem Endstückende (12) des Schafts (4) aufweist, wobei der nicht
hohle massive Endstückring (22) einen Außendurchmesser aufweist, der ungefähr gleich
dem Hauptdurchmesser (D) der Schaftaußenseite im hohlen Abschnitt (16) ist.
2. Befestiger nach Anspruch 1, wobei die axialen Hohlräume äquidistant voneinander sind.
3. Befestiger nach einem der vorhergehenden Ansprüche, wobei sich die axialen Hohlräume
unmittelbar unter dem Befestigerkopf erstrecken.
4. Befestiger nach einem der vorhergehenden Ansprüche, wobei der Befestigerkopf einen
Senker (26, 26', 26") umfasst, der in einer von dem Befestigerschaft entfernten Oberseite
des Kopfes vorgesehen ist, wobei der Senker einen durchschnittlichen Durchmesser aufweist,
der größer ist als der Durchmesser der Bohrung des Befestigers.
5. Befestiger nach Anspruch 4, wobei der Senker eine flache ringförmige sich verjüngende
Wand oder eine gekrümmte sich verjüngende ringförmige Wand umfasst.
6. Befestiger nach Anspruch 4, wobei der Senker eine flache ringförmige Wand umfasst,
die parallel zur Längsachse der Befestigerbohrung der Bohrung verläuft.
7. Befestiger nach Anspruch 5, wobei ein sich verjüngender Halsabschnitt (28) zwischen
dem Senker und der Befestigerbohrung vorgesehen ist.
8. Befestiger nach einem der vorhergehenden Ansprüche, weiter umfassend einen sich verjüngenden
Punkt (10) am Endstückende des Befestigerschafts.
9. Befestiger nach Anspruch 8, weiter umfassend einen Endabschnitt (60) am Endstückende
des Befestigers außerhalb des sich verjüngenden Punktes, wobei der Endabschnitt eine
gerade ringförmige Wand aufweist, die parallel zu einer Längsachse des Befestigers
verläuft.
10. Befestiger nach Anspruch 6, 7 und 9, wobei der Durchmesser des Endabschnitts dem Durchmesser
des Senkers ähnlich ist.
11. Befestiger nach einem der Ansprüche 8 bis 10, wobei sich der massive Endstückring
(22) zwischen dem hohlen Abschnitt und dem sich verjüngenden Punkt befindet.
12. Verfahren zum Installieren eines Befestigers gemäß einem der vorhergehenden Ansprüche,
um dadurch ein Werkstück zu sichern, das ein erstes offenes Werkstückelement (32)
und ein zweites offenes Werkstückelement (34) umfasst, wobei das Verfahren die Schritte
umfasst;
a) Platzieren eines Dorns (104) mit einem radial vergrößerten Kopf (106) durch die
Befestigerbohrung, so dass der radial vergrößerte Kopf des Dorns neben dem Endstückende
des Befestigerschafts liegt;
b) Einführen des Befestigers und des Dorns in die Öffnungen (36, 38) im ersten und
zweiten Werkstückelement, so dass der Befestigerkopf das erste Werkstückelement berührt;
c) Stützen des Befestigers am Kopfende, während der Dorn vollständig durch die Befestigerbohrung
gezogen wird, wodurch der Befestigerschaft in die Öffnungen der Werkstückelemente
erweitert wird und bewirkt wird, dass sich die Kämme der Keile gegen die Öffnungen
verformen und bewirkt wird, dass sich das Endstückende des Befestigerschafts neben
dem zweiten Werkstückelement radial vergrößert.
13. Verfahren nach Anspruch 12, wobei Schritt c) von einem Werkzeug (100) durchgeführt
wird, das eine konische konkave Endfläche (102) umfasst, die auf einer oberen Oberfläche
des Befestigerkopfes aufliegt.
14. Verfahren zum Installieren eines Befestigers nach einem der Ansprüche 1 bis 11, um
dadurch ein Werkstück zu sichern, das ein erstes offenes Werkstückelement und ein
zweites offenes Werkstückelement umfasst, wobei das Verfahren die Schritte umfasst;
a) Einführen eines Stifts (70), der einen radial vergrößerten Kopf (74), einen Halsbruchpunkt
(72) und einen Stopfenabschnitt (76) umfasst, in den Befestiger durch die Befestigerbohrung,
so dass der radial vergrößerte Kopf des Stifts mit dem Endstückende des Befestigerschafts
benachbart ist;
b) Einführen des Befestigers und des Stifts in die Öffnungen in dem ersten und dem
zweiten Werkstückelement, so dass der Befestigerkopf das erste Werkstückelement berührt;
c) Stützen des Befestigers am Kopfende, während der Stift in Bezug auf den Befestigerkopf
gezogen wird, wodurch der Stopfenbschnitt den Befestigerschaft radial in die Öffnungen
der Werkstückelemente erweitert und die Kämme der Keile gegen die Öffnungen verformt,
und wobei dadurch bewirkt wird, dass der radial vergrößerte Kopf des Stifts zusammengezogen
wird und dann das Endstück des Befestigerschafts zusammendrückt, wodurch bewirkt wird,
dass sich das Endstück des Befestigerschafts neben dem zweiten Werkstückelement radial
vergrößert; wobei der Stift in Bezug auf den Befestigerkopf durch die Befestigerbohrung
gezogen wird, bis der Stift an dem Halsbruchpunkt bricht.
15. Verfahren zum Installieren eines Befestigers nach einem der Ansprüche 1 bis 11, um
dadurch ein Werkstück zu sichern, das ein erstes offenes Werkstückelement und ein
zweites offenes Werkstückelement umfasst, wobei das Verfahren die Schritte umfasst;
a) Einsetzen des Befestigers in die Öffnungen in dem ersten und zweiten Werkstückelement,
so dass der Befestigerkopf das erste Werkstückelement berührt;
b) Einführen eines Bruchstifts (80), der einen Stopfenabschnitt (82) mit einem Hohlkern
(84), einem länglichen Schaft (88) und einem Halsbruchpunkt (86) zwischen dem Stopfenabschnitt
und dem länglichen Schaft umfasst, in die Bohrung von dem Befestiger, so dass der
Stopfenbschnitt des Bruchstifts das Endstück des Befestigerschafts berührt;
c) Ziehen des länglichen Schafts des Bruchstifts, der relativ zum Befestiger gezogen
wird, wodurch bewirkt wird, dass der Bruchstift-Stopfenbschnitt in den Befestigerschaft
eintritt, wodurch bewirkt wird, dass sich der Befestigerschaftschaft in die Werkstücköffnungen
erweitert, und wodurch bewirkt wird, dass die Kämme der Keile gegen die Öffnungen
verformt werden, und gleichzeitig bewirkt wird, dass der Stopfenbschnitt nach innen
in den hohlen Kern zusammenfällt; wobei der längliche Schaft relativ zum Befestiger
gezogen wird, bis der Bruchstift an dem Halsbruchpunkt bricht.
16. Verfahren zum Installieren eines Befestigers nach Anspruch 15, wobei der Stift weiter
einen parallelen Abschnitt (85) zwischen dem Halsbruchpunkt und dem Stopfenbschnitt
umfasst und wobei während des Schritts c) durch den parallelen Abschnitt ein Verriegelungsring
erzeugt wird, wodurch eine mechanische Verriegelung des installierten Stifts im Befestigerschaft
bereitgestellt wird.
17. Verfahren zum Installieren eines Befestigers nach einem der Ansprüche 1 bis 11, um
dadurch ein Werkstück zu sichern, das ein erstes offenes Werkstückelement und ein
zweites offenes Werkstückelement umfasst, wobei das Verfahren die Schritte umfasst;
a) Einsetzen des Befestigers in die Öffnungen in dem ersten und zweiten Werkstückelement,
so dass der Befestigerkopf das erste Werkstückelement berührt;
b) Eintreiben eines massiven Stifts (90) mit einem maximalen Durchmesser, der größer
als der der Befestigerbohrung ist, in die Bohrung des Befestigers über den Kopf, wodurch
der Befestigerschaft in mechanischem Eingriff mit den Werkstücköffnungen radial vergrößert
wird und wodurch bewirkt wird, dass die Kämme der Keile gegen die Öffnungen verformt
werden.
18. Verfahren zum Installieren eines Befestigers nach Anspruch 17, ferner umfassend einen
nachfolgenden Schritt des Aufliegens auf dem Befestigerkopf durch eine Stützhülse
und des Entfernens des Stifts aus der Befestigerbohrung.
19. Befestigervorrichtung zum Sichern eines Werkstücks (30), das mehrere Werkstückelemente
(32, 34) umfasst, wobei die Vorrichtung einen Befestiger (2) nach einem der Ansprüche
1 bis 11 und einen Dorn (104) umfasst.
20. Befestigungsvorrichtung nach Anspruch 19, wobei der Dorn einen radial vergrößerten
Kopf (106) mit einem maximalen Durchmesser umfasst, der größer als ein Durchmesser
der Befestigerbohrung und kleiner als ein maximaler Außendurchmesser des Befestigerschafts
ist.
1. Fixation (2), pour fixer une pièce à usiner (30) comprenant une pluralité d'éléments
de pièce à usiner (32, 34),
ladite fixation comprenant une tige (4) avec une extrémité de tête (8) et une extrémité
de queue (12) éloignée de l'extrémité de tête, et une tête élargie radialement (6)
au niveau de l'extrémité de tête de la tige, et un alésage (14) s'étendant à travers
la fixation,
dans laquelle une paroi externe (20) de la tige comprend une section à vides (16)
comprenant une pluralité de vides (40) séparés par une pluralité de cannelures (18)
dont chacune aboutit à une crête (24), les vides et les cannelures étant allongés
dans une direction axiale par rapport à un axe longitudinal de l'alésage de fixation
; dans laquelle les vides s'étendent radialement vers l'intérieur à partir d'un diamètre
majeur (D) de l'extérieur de tige, et dans laquelle les cannelures s'étendent radialement
vers l'extérieur à partir d'un diamètre mineur (d) de l'extérieur de tige,
dans laquelle les cannelures ont une section transversale approximativement trapézoïdale,
et les vides ont une aire de section transversale qui est constante sur la longueur
de la section à vides de la tige de fixation ;
dans laquelle la tige (4) inclut un anneau de queue solide sans vide (22) entre la
section à vides (16) et l'extrémité de queue (12) de la tige (4), l'anneau de queue
solide sans vide (22) ayant un diamètre externe approximativement égal au diamètre
majeur (D) de l'extérieur de tige dans la section à vides (16).
2. Fixation selon la revendication 1, dans laquelle les vides axiaux sont équidistants
les uns des autres.
3. Fixation selon l'une quelconque des revendications précédentes, dans laquelle les
vides axiaux s'étendent depuis immédiatement en dessous de la tête de fixation.
4. Fixation selon l'une quelconque des revendications précédentes, dans laquelle la tête
de fixation comprend une fraise conique (26, 26', 26") prévue dans une surface supérieure
de la tête éloignée de la tige de fixation, la fraise conique ayant un diamètre moyen
qui est supérieur au diamètre de l'alésage de la fixation.
5. Fixation selon la revendication 4, dans laquelle la fraise conique comprend une paroi
effilée annulaire plate ou une paroi annulaire effilée incurvée.
6. Fixation selon la revendication 4, dans laquelle la fraise conique comprend une paroi
annulaire plate qui est parallèle à l'axe longitudinal de l'alésage de fixation de
l'alésage.
7. Fixation selon la revendication 5, dans laquelle une partie de col effilée (28) est
prévue entre la fraise conique et l'alésage de fixation.
8. Fixation selon l'une quelconque des revendications précédentes, comprenant en outre
une pointe effilée (10) à l'extrémité arrière de la tige de fixation.
9. Fixation selon la revendication 8, comprenant en outre une section d'extrémité (60)
au niveau de l'extrémité de queue de la fixation au-delà de la pointe effilée, la
section d'extrémité ayant une paroi annulaire droite qui est parallèle à un axe longitudinal
de la fixation.
10. Fixation selon les revendications 6, 7 et 9, dans laquelle le diamètre de la section
d'extrémité est similaire au diamètre de la fraise conique.
11. Fixation selon l'une quelconque des revendications 8 à 10, dans laquelle l'anneau
de queue solide (22) est entre la section à vides et la pointe effilée.
12. Procédé d'installation d'une fixation selon l'une quelconque des revendications précédentes,
pour fixer ainsi une pièce à usiner comprenant un premier élément de pièce à usiner
à ouvertures (32) et un second élément de pièce à usiner à ouvertures (34), le procédé
comprenant les étapes suivantes consistant à :
a) placer un mandrin (104) ayant une tête élargie radialement (106) à travers l'alésage
de fixation de telle sorte que la tête élargie radialement du mandrin soit adjacente
à l'extrémité de queue de la tige de fixation ;
b) insérer la fixation et le mandrin dans les ouvertures (36, 38) dans les premier
et second éléments de pièce à usiner de sorte que la tête de fixation vienne en contact
avec le premier élément de pièce à usiner ;
c) soutenir la fixation au niveau de l'extrémité de tête tout en tirant le mandrin
entièrement à travers l'alésage de fixation, en élargissant ainsi la tige de la fixation
dans les ouvertures des éléments de pièce à usiner, et en amenant les crêtes des cannelures
à être déformées contre les ouvertures, et en amenant l'extrémité de queue de la tige
de fixation à s'élargir radialement en un endroit adjacent au second élément de pièce
à usiner.
13. Procédé selon la revendication 12, dans lequel l'étape c) est effectuée par un outil
(100) comprenant une face d'extrémité conique concave (102) qui prend appui sur une
surface supérieure de la tête de fixation.
14. Procédé d'installation d'une fixation selon l'une quelconque des revendications 1
à 11, pour fixer ainsi une pièce à usiner comprenant un premier élément à ouvertures
et un second élément à ouvertures, le procédé comprenant les étapes de ;
a) insérer une tige (70) comprenant une tête élargie radialement (74), un point de
rupture (72) et une partie d'obturation (76), dans la fixation à travers l'alésage
de fixation de telle sorte que la tête élargie radialement de la tige soit adjacente
à l'extrémité de queue de la tige de fixation ;
b) insérer la fixation et la tige dans les ouvertures des premier et second éléments
de pièce à usiner de manière à ce que la tête de fixation vienne en contact avec le
premier élément de pièce à usiner ;
c) supporter la fixation au niveau de l'extrémité de tête tout en tirant la tige par
rapport à la tête de fixation, en amenant ainsi la partie d'obturation à dilater radialement
la tige de la fixation dans les ouvertures des éléments de pièce à usiner et à déformer
les crêtes des cannelures contre les ouvertures, et en amenant ainsi la tête élargie
radialement de la tige à contracter, puis à comprimer, l'extrémité de queue de la
tige de fixation, en amenant ainsi l'extrémité de queue de la tige de fixation à s'élargir
radialement en un endroit adjacent au second élément de pièce à usiner ; dans lequel
la tige est tirée par rapport à la tête de fixation à travers l'alésage de fixation
jusqu'à ce que la tige se casse au niveau du point de rupture.
15. Procédé d'installation d'une fixation selon l'une quelconque des revendications 1
à 11, pour fixer ainsi une pièce à usiner comprenant un premier élément de pièce à
usiner à ouvertures et un second élément de pièce à usiner à ouverture, le procédé
comprenant les étapes consistant à ;
a) insérer la fixation dans les ouvertures des premier et second éléments de pièce
à usiner de telle sorte que la tête de fixation vienne en contact avec le premier
élément de pièce à usiner ;
b) insérer une tige de rupture (80) comprenant une partie d'obturation (82) avec un
noyau creux (84), une tige allongée (88) et un point de rupture (86) entre la partie
d'obturation et la tige allongée, dans l'alésage de la fixation, de telle sorte que
la partie d'obturation de la tige de rupture vienne en contact avec l'extrémité de
queue de la tige de fixation ;
c) tirer la tige allongée de la tige de rupture tirée par rapport à la fixation, en
amenant ainsi la partie d'obturation de tige de rupture à entrer dans la tige de la
fixation, en amenant la tige de fixation à se dilater dans les ouvertures de pièce
à usiner, et en amenant les crêtes des cannelures à être déformées contre les ouvertures,
et en amenant simultanément la partie d'obturation à s'affaisser vers l'intérieur
dans le noyau creux; dans lequel la tige allongée est tirée par rapport à la fixation
jusqu'à ce que la tige de rupture échoue au niveau du point de rupture.
16. Procédé d'installation d'une fixation selon la revendication 15, dans lequel la tige
comprend en outre une partie parallèle (85) entre le point de rupture et la partie
d'obturation, et dans lequel, lors de l'étape c), une jupe de verrouillage est créée
par la partie parallèle, fournissant ainsi un verrouillage mécanique de la tige installée
dans la tige de fixation.
17. Procédé d'installation d'une fixation selon l'une quelconque des revendications 1
à 11, pour fixer ainsi une pièce à usiner comprenant un premier élément de pièce à
usiner à ouvertures et un second élément de pièce à usiner à ouvertures, le procédé
comprenant les étapes consistant à ;
a) insérer la fixation dans les ouvertures dans les premier et second éléments de
pièce à usiner de telle sorte que la tête de fixation vienne en contact avec le premier
élément de pièce à usiner ;
b) entraîner une broche pleine (90), ayant un diamètre maximum supérieur à celui de
l'alésage de fixation, dans l'alésage de la fixation via la tête pour ainsi élargir
radialement la tige de fixation en prise mécanique avec les ouvertures de pièce à
usiner, et en amenant les crêtes des cannelures à être déformées contre les ouvertures.
18. Procédé d'installation d'une fixation selon la revendication 17, comprenant en outre
une étape ultérieure consistant à mettre la tête de la fixation en appui via un manchon
de support, et à retirer la broche à partir de l'alésage de fixation.
19. Appareil de fixation, pour fixer une pièce à usiner (30) comprenant une pluralité
d'éléments de pièce à usiner (32, 34), ledit appareil comprenant une fixation (2)
selon l'une quelconque des revendications 1 à 11 et un mandrin (104).
20. Appareil de fixation selon la revendication 19, dans lequel ledit mandrin comprend
une tête élargie radialement (106) d'un diamètre maximum qui est supérieur à un diamètre
de l'alésage de fixation, et inférieur à un diamètre externe maximum de la tige de
fixation.